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Structural, electronic, and hyperfine properties of pure and Ta-dopedm-ZrO2
Author(s) -
M. A. Taylor,
R. E. Alonso,
L. A. Errico,
A. LópezGarcía,
Patricia de la Presa,
A. Svane,
N. E. Christensen
Publication year - 2012
Publication title -
physical review b
Language(s) - English
Resource type - Journals
eISSN - 1538-4489
pISSN - 1098-0121
DOI - 10.1103/physrevb.85.155202
Subject(s) - hyperfine structure , ab initio , doping , electronic structure , impurity , monoclinic crystal system , materials science , charge (physics) , ab initio quantum chemistry methods , condensed matter physics , physics , atomic physics , quantum mechanics , molecule
A combination of experiments and ab initio quantum-mechanical calculations has been applied to examine electronic, structural, and hyperfine interactions in pure and Ta-doped zirconium dioxide in its monoclinic phase (m-ZrO₂). From the theoretical point of view, the full-potential linear augmented plane wave plus local orbital (APW + lo) method was applied to treat the electronic structure of the doped system including the atomic relaxations introduced by the impurities in the host in a fully self-consistent way using a supercell approach. Different charge states of the Ta impurity were considered in the study and its effects on the electronic, structural, and hyperfine properties are discussed. Our results suggest that two different charge states coexist in Ta-doped m-ZrO₂. Further, ab initio calculations predict that depending on the impurity charge state, a sizeable magnetic moment can be induced at the Ta-probe site. This prediction is confirmed by a new analysis of experimental data

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